Dietary exposure modulates cutaneous immunity and microbiota to facilitate wound healing 2308096

M Motoyoshi Nagai (Metaorganism Immunity Section, Laboratory of Host Immunity and Microbiome, National Institute of Allergy and Infectious Diseases) V Victor Band (NIAID/NIH) L Liang Chi M Margery Smelkinson B Benjamin Schwarz A Andrew Burns (NIAID/NIH) P Paula Juliana Perez-Chaparro K Kathryn McCauley (NIAID/NIH) N Nicolas Bouladoux (Metaorganism Immunity Section, Laboratory of Host Immunity and Microbiome, National Institute of Allergy and Infectious Diseases) V Verena Link (NIAID/NIH) M Michael Otto (Pathogen Molecular Genetics Section, Laboratory of Bacteriology, Division of Intramural Research, National Institute of Allergy and Infection Diseases, National Institutes of Health) N Niki Moutsopoulos Y Yasmine Belkaid

Abstract

Abstract Introduction Nutrition influences all host physiological processes, yet its role in regulating tissue repair remains poorly understood. Although both the immune system and the microbiota have been implicated in tissue repair, how diet reshapes host physiology, microbial function, or host—microbe interactions to promote regeneration has not been investigated. Methods To test this, we manipulated the nutritional status of mice using either dietary restriction or nutrient-enriched diets and assessed wound closure following injury. Results Here, we show that the ketogenic diet (KD), a diet enriched in fats and low in carbohydrates, feeding reshapes the metabolic environment of the skin and enhances both the abundance and metabolic output of the commensal Staphylococcus epidermidis. In vivo metatranscriptomics revealed KD-induced increases in microbial glycolysis, nucleotide synthesis, and riboflavin-pathway activity. Lipidomic profiling further showed that KD elevated bacterial sphingomyelinase-dependent ceramides in the epidermis. These diet-responsive microbial metabolites amplified cutaneous γδ T cell and mucosal-associated invariant T (MAIT) cell responses and directly promoted keratinocyte activation, collectively accelerating wound repair. Genetic disruption of microbial ribD or sphingomyelinase impaired these effects, demonstrating that host nutritional status drives tissue regeneration by rewiring commensal metabolic programs. Conclusion Together, our findings reveal a diet-sensitive metabolic axis through which skin microbes coordinate tissue regeneration. Funding Source Supported by NIAID; 1ZIA-AI001115 and 1ZIA-AI001132; JSPS CPD Reseach Fellowship for Young Scientist Topic Categories Mucosal and Regional Immunology (MUC)

Article Details

Volume / Issue Vol. 215, Issue Supplement_1
Published August 01, 2026
ISSN 0022-1767
Publisher American Association of Immunologists

Authors (13)

M

Motoyoshi Nagai

Metaorganism Immunity Section, Laboratory of Host Immunity and Microbiome, National Institute of Allergy and Infectious Diseases

V

Victor Band

NIAID/NIH

L

Liang Chi

M

Margery Smelkinson

B

Benjamin Schwarz

A

Andrew Burns

NIAID/NIH

P

Paula Juliana Perez-Chaparro

K

Kathryn McCauley

NIAID/NIH

N

Nicolas Bouladoux

Metaorganism Immunity Section, Laboratory of Host Immunity and Microbiome, National Institute of Allergy and Infectious Diseases

V

Verena Link

NIAID/NIH

M

Michael Otto

Pathogen Molecular Genetics Section, Laboratory of Bacteriology, Division of Intramural Research, National Institute of Allergy and Infection Diseases, National Institutes of Health

N

Niki Moutsopoulos

Y

Yasmine Belkaid